State Key Laboratory of Fine Chemicals, Key Laboratory of Industrial Ecology and Environmental Engineering (MOE), School of Environmental Science and Technology, Dalian University of Technology , Dalian 116024, China.
ACS Appl Mater Interfaces. 2014 Jan 8;6(1):671-9. doi: 10.1021/am404774z. Epub 2013 Dec 20.
This work aims at the exploration of nanostructured ferroelectric-material-modified semiconductor electrodes for enhanced photo-induced activity. A well-aligned BiFeO3/TiO2-nanotubes (NTs) array with visible-light activity was successfully synthesized on a titanium sheet by combining anodization and an ultrasonic-immersion method followed by annealing. The structural and optical properties of the TiO2-NTs and the composite BiFeO3/TiO2-NTs were comparatively characterized. The composite BiFeO3/TiO2-NTs grown on a Ti sheet and used as an electrode exhibited a stronger absorption in the visible region and a much higher photoconversion efficiency than the pure TiO2-NTs/Ti electrode. Electrochemical impedance investigation attested to a significant improvement of the interfacial electron-transfer kinetics with enhanced separation of electron-hole pairs. The as-prepared composite electrode showed a high efficiency for photoelectrocatalytic degradation towards rhodamine B under visible-light irradiation (λ > 400 nm). The enhanced photoelectrocatalytic activity of the composite electrode could be attributed to the synergistic effect between the lowered electron-hole recombination rate by the applied bias and the wider spectral response promoted by the BiFeO3 component.
本工作旨在探索用于增强光致活性的纳米结构铁电材料修饰半导体电极。通过将阳极氧化和超声浸渍法结合退火处理,在钛片上成功合成了具有可见光活性的取向良好的 BiFeO3/TiO2-纳米管(NTs)阵列。比较了 TiO2-NTs 和复合 BiFeO3/TiO2-NTs 的结构和光学性能。生长在 Ti 片上并用作电极的复合 BiFeO3/TiO2-NTs 在可见区域表现出更强的吸收,并且比纯 TiO2-NTs/Ti 电极具有更高的光电转换效率。电化学阻抗研究证明,界面电子转移动力学得到了显著改善,电子-空穴对的分离得到了增强。在可见光(λ>400nm)照射下,所制备的复合电极对罗丹明 B 的光电催化降解具有高效性。复合电极的增强光电催化活性可归因于外加偏压降低电子-空穴复合速率和 BiFeO3 组分促进的更宽光谱响应的协同效应。